Literature DB >> 22148629

Acid-induced degradation of phosphorescent dopants for OLEDs and its application to the synthesis of tris-heteroleptic iridium(III) bis-cyclometalated complexes.

Etienne Baranoff1, Basile F E Curchod, Julien Frey, Rosario Scopelliti, Florian Kessler, Ivano Tavernelli, Ursula Rothlisberger, Michael Grätzel, Md Khaja Nazeeruddin.   

Abstract

Investigations of blue phosphorescent organic light emitting diodes (OLEDs) based on [Ir(2-(2,4-difluorophenyl)pyridine)(2)(picolinate)] (FIrPic) have pointed to the cleavage of the picolinate as a possible reason for device instability. We reproduced the loss of picolinate and acetylacetonate ancillary ligands in solution by the addition of Brønsted or Lewis acids. When hydrochloric acid is added to a solution of a [Ir(C^N)(2)(X^O)] complex (C^N = 2-phenylpyridine (ppy) or 2-(2,4-difluorophenyl)pyridine (diFppy) and X^O = picolinate (pic) or acetylacetonate (acac)), the cleavage of the ancillary ligand results in the direct formation of the chloro-bridged iridium(III) dimer [{Ir(C^N)(2)(μ-Cl)}(2)]. When triflic acid or boron trifluoride are used, a source of chloride (here tetrabutylammonium chloride) is added to obtain the same chloro-bridged iridium(III) dimer. Then, we advantageously used this degradation reaction for the efficient synthesis of tris-heteroleptic cyclometalated iridium(III) complexes [Ir(C^N(1))(C^N(2))(L)], a family of cyclometalated complexes otherwise challenging to prepare. We used an iridium(I) complex, [{Ir(COD)(μ-Cl)}(2)], and a stoichiometric amount of two different C^N ligands (C^N(1) = ppy; C^N(2) = diFppy) as starting materials for the swift preparation of the chloro-bridged iridium(III) dimers. After reacting the mixture with acetylacetonate and subsequent purification, the tris-heteroleptic complex [Ir(ppy)(diFppy)(acac)] could be isolated with good yield from the crude containing as well the bis-heteroleptic complexes [Ir(ppy)(2)(acac)] and [Ir(diFppy)(2)(acac)]. Reaction of the tris-heteroleptic acac complex with hydrochloric acid gives pure heteroleptic chloro-bridged iridium dimer [{Ir(ppy)(diFppy)(μ-Cl)}(2)], which can be used as starting material for the preparation of a new tris-heteroleptic iridium(III) complex based on these two C^N ligands. Finally, we use DFT/LR-TDDFT to rationalize the impact of the two different C^N ligands on the observed photophysical and electrochemical properties.

Entities:  

Year:  2011        PMID: 22148629     DOI: 10.1021/ic202162q

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  12 in total

Review 1.  Post-complexation Functionalization of Cyclometalated Iridium(III) Complexes and Applications to Biomedical and Material Sciences.

Authors:  Shin Aoki; Kenta Yokoi; Yosuke Hisamatsu; Chandrasekar Balachandran; Yuichi Tamura; Tomohiro Tanaka
Journal:  Top Curr Chem (Cham)       Date:  2022-08-10

2.  White light emission produced by CTMA-DNA nanolayers embedded with a mixture of organic light-emitting molecules.

Authors:  Prathamesh Chopade; Sreekantha Reddy Dugasani; Sohee Jeon; Jun-Ho Jeong; Sung Ha Park
Journal:  RSC Adv       Date:  2019-10-04       Impact factor: 4.036

3.  Solubilised bright blue-emitting iridium complexes for solution processed OLEDs.

Authors:  Adam F Henwood; Ashu K Bansal; David B Cordes; Alexandra M Z Slawin; Ifor D W Samuel; Eli Zysman-Colman
Journal:  J Mater Chem C Mater       Date:  2016-02-11       Impact factor: 7.393

4.  Blue-to-Green Emitting Neutral Ir(III) Complexes Bearing Pentafluorosulfanyl Groups: A Combined Experimental and Theoretical Study.

Authors:  Amlan K Pal; Adam F Henwood; David B Cordes; Alexandra M Z Slawin; Ifor D W Samuel; Eli Zysman-Colman
Journal:  Inorg Chem       Date:  2017-06-14       Impact factor: 5.165

5.  Highly Efficient and Stable Organic Light-Emitting Diodes with Inner Passivating Hole-Transfer Interlayers of Poly(amic acid)-Polyimide Copolymer.

Authors:  Jaewoo Park; Wonsun Kim; Yushika Aggawal; Kichul Shin; Eun Ha Choi; Byoungchoo Park
Journal:  Adv Sci (Weinh)       Date:  2022-01-27       Impact factor: 16.806

6.  Charge Photo-Accumulation and Photocatalytic Hydrogen Evolution Under Visible Light at an Iridium(III)-Photosensitized Polyoxotungstate.

Authors:  Benjamin Matt; Jennifer Fize; Jamal Moussa; Hani Amouri; Alexandre Pereira; Vincent Artero; Guillaume Izzet; Anna Proust
Journal:  Energy Environ Sci       Date:  2013-05       Impact factor: 38.532

7.  Direct observation of reversible electronic energy transfer involving an iridium center.

Authors:  Sergey A Denisov; Yanouk Cudré; Peter Verwilst; Gediminas Jonusauskas; Marta Marín-Suárez; Jorge Fernando Fernández-Sánchez; Etienne Baranoff; Nathan D McClenaghan
Journal:  Inorg Chem       Date:  2014-02-20       Impact factor: 5.165

Review 8.  Luminescent Iridium Complexes Used in Light-Emitting Electrochemical Cells (LEECs).

Authors:  Adam F Henwood; Eli Zysman-Colman
Journal:  Top Curr Chem (Cham)       Date:  2016-06-06

9.  Pseudo-Tris(heteroleptic) Red Phosphorescent Iridium(III) Complexes Bearing a Dianionic C,N,C',N'-Tetradentate Ligand.

Authors:  Vadim Adamovich; Llorenç Benavent; Pierre-Luc T Boudreault; Miguel A Esteruelas; Ana M López; Enrique Oñate; Jui-Yi Tsai
Journal:  Inorg Chem       Date:  2021-07-22       Impact factor: 5.436

10.  Excited-State Engineering in Heteroleptic Ionic Iridium(III) Complexes.

Authors:  Filippo Monti; Andrea Baschieri; Letizia Sambri; Nicola Armaroli
Journal:  Acc Chem Res       Date:  2021-02-22       Impact factor: 24.466

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